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主动线扫描与空间选通技术在漫反射成像中用于散射微观结构的应用。

Active line scan with spatial gating for sub-diffuse reflectance imaging of scatter microtexture.

出版信息

Opt Lett. 2020 Dec 1;45(23):6378-6381. doi: 10.1364/OL.404415.

Abstract

We examine the value of an active line scan with spatial gating for imaging sub-diffuse, wide-field reflectance microtexture. Line scanning combined with spatial gating and linear translation can be used for localized detection of features in the surface layer of a turbid target. The line scan provides broadband spatial frequency modulation, and the spatial gating effectively high-pass filters the reflectance. The major benefit of this approach is that of high dynamic range (70%-90%) signal preservation and high contrast to noise when imaging at high spatial frequencies. Alternative approaches, such as spatial frequency domain imaging, are degraded by low dynamic range in demodulated images, making it nearly impossible to image over a wide field of view at frequencies over 1.5 using commercial technology. As such, active line scanning with spatial gating presents as an inherently high sensitivity and high dynamic range method of imaging microscopic scattering features in only the surface layer of a turbid medium.

摘要

我们研究了一种主动线扫描技术,该技术结合空间选通和线性平移,可用于对漫散射、宽场反射微纹理进行成像。线扫描与空间选通和线性平移相结合,可用于在混浊目标的表面层中局部检测特征。线扫描提供宽带空间频率调制,而空间选通则有效地对反射率进行高通滤波。这种方法的主要优点是,在高空间频率下成像时,可以保持高动态范围(70%-90%)的信号,并具有高对比度噪声。替代方法,如空间频域成像,由于解调图像的动态范围较低,因此在使用商业技术时,几乎不可能在 1.5 倍以上的频率下对宽视场进行成像。因此,主动线扫描与空间选通相结合,是一种固有高灵敏度和高动态范围的方法,可仅对混浊介质的表面层中的微观散射特征进行成像。

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